BACKGROUND OF THE INVENTION
[0001] 1.
Field of the Invention. This invention relates to medical articles, and more particularly relates to a lubricious
and antithrombogenic composition and method for its application to a medical article.
[0002] 2.
Background of the Invention. Extensive investigations have been undertaken over many years to find material that
will be biologically and chemically stable toward body fluids. This area of research
has become increasingly important with the development of various objects and articles
which may come into contact with blood, such as artificial organs, vascular grafts,
probes, cannulas, catheters and the like.
[0003] Synthetic plastics have come to the fore as preferred materials for such articles.
However, such materials have the major drawback of being thrombogenic. Even such plastics
as polytetrafluoroetheylene and the silicone rubbers, which are more compatible with
blood than most plastics, still show thrombogenic characteristics.
[0004] Often, use of such articles, as for example, probes, cannulas, catheters and the
like, include puncture and passage of the article through the skin. Friction between
the patient's skin and the plastic surface of the article may cause substantial discomfort
to the patient. Further, catheters are often used in conjunction with an introducer
device which typically contains a soft rubber one-way check valve through which the
catheter must be threaded. When one surface of an article must slide across another
surface, friction may develop which can cause damage to the article. In particular,
fragile catheter balloons may be damaged by friction during passage through the valve
of the introducer. Thus, both antithrombogenicity and lubricity are highly desirable
properties for article surfaces to come into contact with blood.
[0005] Surfaces may be rendered lubricious by simple application of any common lubricant.
Silicone oils are generally recognized to be among the best lubricants available.
Application of a silicone lubricant to a surface is known to result in significant
reduction in the surface drag upon catheter insertion, facilitate catheter placement,
and reduce the force required for catheter retraction.
[0006] Thrombogenicity has conventionally been counteracted by the use of anticoagulants
such as heparin. A variety of heparinization procedures have been reported. For example,
Solomon et al., in U.S. Patent No. 4,521,564, discloses a method to convalently bond
heparin to a polyurethane substrate. Eriksson et al., in U.S. Patent No. 4,118,485,
coats a plastic surface with a complex of heparin and either an alkylamine salt or
a quaternary amine salt and subsequently stabilizes the heparin by crosslinking with
a dialdehyde.
[0007] Williams et al., in U.S. Patent No. 4,613,517, reveals a process for ionically bonding
heparin to a polymeric surface including the steps of plasma-treating the surface,
absorbing a surface active agent onto the plasma-treated surface, reacting the surface
active agent with heparin, and crosslinking the heparin with glutaraldehyde.
[0008] Substrates rendered blood compatible by coating with a layer of silicone have been
disclosed. Durst et al. in
Am. J. of Roent., Radium Ther. and Nuclear Med.,
120, 904 (1974) reported that,
in vitro, siliconized stainless steel guidewires, polytetrafluoroethylene coated guidewires
and polyethylene catheters were hypothrombogenic compared to untreated substrates,
but,
in vivo in dogs, no antithrombogenic effect was observed except with heparin coated substrates.
[0009] McGary et al., in U.S. Patent No. 4,678,660, discloses dipping a polyurethane substrate
into a solution of a complex of heparin and tridodecylmethyl ammonium chloride (TDMAC)
in polyurethane to form a layer of the complex in polyurethane on the substrate. A
lower leach rate of heparin is claimed for the patented product having heparin distributed
throughout the polyurethane layer as compared to heparin ionically bonded to TDMAC
on the surface of the polyurethane substrate.
[0010] U.S. Patent No. 4,529,614 to Burns discloses coatings of an anticoagulant and a water
soluble copolymeric silicone applied to plastic surfaces. The coatings render the
surfaces hydrophobic and dissolve in the blood to impart anticoagulant properties
to a sample to be analyzed.
[0011] Thus, while the prior art has recognized for many years the desirability of rendering
substrate surfaces antithrombogenic or lubricious, there are no reports known to the
authors of the simultaneous achievement of both effects. The present invention addresses
this need.
SUMMARY OF THE INVENTION
[0012] One aspect of the invention is a composition being non-leachable for an aqueous vehicle
as blood for coating a polymeric surface comprising a mixture of a quanternary ammonium
complex of heparin and 2 to 75% by weight of a lubricating silicone, said complex
having the formula

wherein R₁ R₂, R₃ and R₄ are independently selected from the group consisting of an
alkyl group of 1 to 18 carbon atoms and an aralkyl group of 7 to 18 carbon atoms and
H⁻ is a negative ion of heparin, said silicone being water insoluble and noncuring,
and having a viscosity of 20 to 1,000,000 mm²·s⁻¹ (centistokes).
[0013] In particularly preferred compositions, the complex has three long chain alkyl groups
on the nitrogen and the lubricant is a polydimethylsiloxane of viscosity 1,000 to
60,000 mm²·s⁻¹ (centistokes).
[0014] Another aspect of the invention is a medical device adapted for contact with blood.
The device includes a medical article, preferably a shaped medical article having
a coating of the composition of the invention on its surface. Preferred medical articles
are polymeric, most preferably polyolefin or polyurethane. The most preferred article
of the invention is a catheter or catheter introducer having a coating of the composition
on its surface.
[0015] In another aspect of the invention, a method is provided to coat the surface of the
article with the composition so that the surface is both antithrombogenic and lubricious.
In the preferred method, the article is coated by dipping into a solvent solution
of the composition.
[0016] Thus, the invention solves two problems simultaneously which the prior art has addressed
only individually. For example, general intravascular catheters coated with the composition
of the invention may be inserted easily into the body consequent to the lubricating
silicone and, once inserted, exhibit enhanced hemocompatibility consequent to the
heparin. If used as a coating on balloon intravascular catheters, the composition,
in addition to the above advantages, provides easier insertion of the balloon segment
of the catheter thereby decreasing the potential for damage to the balloon during
insertion. Further, large gauge and/or multilumen catheters coated with the composition
of the invention may be inserted through a rubber introducer valve with minimal damage
to the balloon and reduced abrasive removal of a heparin coating.
[0017] A particular advantage to coating a medical article with the composition of the invention
is that the admixture of heparin and silicone provides lubricity due to the silicone
with no compromise of the antithrombogenic activity of the heparin. The water insolubility
of the silicone renders the composition resistant to leaching by blood so that antithrombogenicity
is retained for periods of up to seven days, and even longer, during medical procedures
such as long term catheterization.
DETAILED DESCRIPTION OF THE INVENTION
[0018] While this invention is satisfied by embodiments in many different forms, there will
herein be described in detail preferred embodiments of the invention, with the understanding
that the present disclosure is to be considered as exemplary of the principles of
the invention and is not intended to limit the invention to the embodiments described.
The scope of the invention will be measured by the appended claims and their equivalents.
[0019] In one aspect of the present invention, there is provided a medical device having
a surface which is both antithrombogenic and lubricious. The device includes a shaped
medical article and a leach-resistant composition on the surface thereof, and, in
another aspect of the invention, there is provided an antithrombogenic and lubricious
composition. In still another aspect of the invention, a method for rendering a substrate
surface both antithrombogenic and lubricious is provided.
[0020] The invention will be described in terms of a tubing, such as a catheter; however,
it will be apparent to one ordinarily skilled in the art that the substrate may equally
be any of a variety of other shaped medical articles. Exemplary, but not limitative,
of suitable articles are peripheral and central catheters of all types, including
large gauge and multilumen types, introducers and check valves therefor, sheaths,
guide wires and stylets. The invention also contemplates applying the composition
to either or both of an exterior or interior surface of an article.
[0021] The lubricated, antithrombogenic tubing of the invention is preferably made of a
polymeric material, though it is appreciated by one skilled in the art that other
materials, such as glass, metal or ceramic may be used. Suitable polymers are, for
example, polyolefins, such as polyethylene or polypropylene, polyvinyl resins such
as polyvinylchloride, polyvinylacetate, polyvinylidene fluoride and copolymers thereof,
fluorinated polymers such as polytetrafluoroethylene (PTFE), fluorinated ethylene-propylene
polymer (FEP) and polytrifluorochloroethylene, polyurethanes, polyamides, silicone
elastomers, polystyrenes, styrene-butadiene copolymers, polysiloxane modified polystyrenes
and polystyrene-polyolefin copolymers, and thermoplastic interpenetrating network
polymers. In addition, the tubing may have an additional coating, such as a hydrogel,
on its surface, and the composition of the invention may be applied over the hydrogel
coating.
[0022] The composition of the invention includes an antithrombogenic agent and a lubricant.
The antithrombogenic agent is heparin, which froms a complex with an alkylammonium
salt of general structure I:

wherein R₁ may be selected from the group consisting of an alkyl group of 7 to 18
carbon atoms and R₂,R₃ and R₄ may independently be selected from the group consisting
of hydrogen, an alkyl group of 1 to 18 carbon atoms and an aralkyl group of 7 to 18
carbon atoms and X⁻ may be a halide ion, such as chloride or bromide.
[0023] The preferred salt to be complexed with heparin is a quaternary ammonium salt of
formula I in which R₁,R₂,R₃ and R₄ may independently be an alkyl group, straight chain
or branched, of from 1 to 18 carbon atoms, or an aralkyl group of 7 to 18 carbon atoms
and X may be a negative monovalent ion, such as a halide ion. For example, the commercially
available quaternary salt benzalkonium chloride wherein R₁ is C₈H₁₇, R₂ is C₆H₅CH₂
and R₃ and R₄ are methyl may be used. In particularly preferred quaternary salts for
complexation with heparin, R₁,R₂ and R₃ may independently be straight chain alkyl
groups of from 8 to 18 carbon atoms and R₄ may be lower alkyl group of from 1-4 carbon
atoms. In the most preferred salt, R₁,R₂ and R₃ are dodecyl groups, R₄ is methyl and
X⁻ is chloride. This quaternary salt is commonly referred to as TDMAC. Thus, the most
preferred complex has the formula I wherein X⁻ is an anion of heparin. Such complexes
of heparin are well-known in the art, and are described in McGary et al. and Eriksson
et al., supra.
[0024] The complex as previously described and silicone are mixed to form the composition
of the invention. If the complex has sufficient solubility in the silicone, the mixing
may be done merely by dissolving the complex in the silicone at the desired concentration.
Preferably, the complex and silicone may be mixed merely by dissolving in an appropriate
solvent or solvent system. Use of a solvent is particularly advantageous when a silicone
oil of high viscosity is included in the composition. Exemplary of suitable solvents
are toluene, petroleum ether, methylene chloride or any one of the fluorinated hydrocarbons
conventionally termed Freon™. In some cases, it may be desirable to use a more polar
solvent such as ethanol or isopropanol in the solvent system to aid in dissolution
of the complex. The concentration of the complex in the solvent system is not critical,
and may advantageously be from 0.1 to 5% by weight. Higher concentration may be used
but generally do not provide any advantage. The preferred concentration is from 1-2%.
Determination of a suitable solvent and concentration for the complex is well within
the purview of one ordinarily skilled in the art.
[0025] A lubricating oil is added to the solvent solution of the complex. Any water insoluble
lubricating oil may be used, as, for example, refined white oil. Preferred lubricants
are stable, noncuring high purity medical grade silicones such as the polydialkylsiloxanes
of formula II:

In formula II, R₁ and R₂ may be independently an alkyl group of from 1 to 20 carbon
atoms or taken together may form a ring of from 4 to 8 carbon atoms. The number of
repeating units, n, is sufficient to provide a viscosity of from 20 to 1,000,000 mm²·s⁻¹
(centistokes). In particularly preferred polydialkylsiloxanes of formula II, R₁ is
methyl and the viscosity is from 1,000 to 60,000 mm²·s⁻¹ (centistokes). The most preferred
silicones are polydimethylsidoxanes having a viscosity of from 5,000 to 20,000 mm²·s⁻¹
as exemplified by the commercially available product DC-360™ available from Dow Corning,
Midland, MI.
[0026] The quantity of silicone to be added to the solvent solution of the complex may be
varied over a wide range. It has been found that a composition having as little as
2% by weight of the silicone, based on the complex, yields a significant improvement
in lubricity when applied to the substrate, as described below. On the other hand,
as much as 75% by weight of silicone may be advantageous for certain compositions
and substrates. A preferred concentration range of silicone may be from 20-50% by
weight of the complex.
[0027] Application of the composition of complex and silicone to the substrate may be carried
out by any conventional technique. For example, the composition, preferably in the
solvent, may be brushed or sprayed onto the substrate. The preferred method of application
is merely to immerse the substrate into the solvent containing the composition. If
the substrate is a tubing, such as a catheter, and it is desired to ensure that the
composition coats the lumen wall, it may be advantageous to draw the composition into
the lumen by the application of reduced pressure.
[0028] Immersion of the substrate in the solvent solution of the composition may be carried
out at any suitable temperature up to the boiling point of the solvent and may be
maintained for any convenient length of time. The time and temperature of contact
are not critical, but preferably are about 1 second to 1 hour and ambient temperature.
[0029] After withdrawing the substrate from the solution, the solvent may be removed by
evaporation. If desired, the rate of evaporation may be accelerated by application
of reduced pressure or mild heat. The coating of the composition applied to the substrate
may be of any convenient thickness, and in practice, the thickness will be determined
by such factors as the viscosity of the silicone, the temperature of the application
and the rate of withdrawal. For most substrates, the film preferably is applied as
thinly as practical, since no significant advantage is gained by thicker films.
[0030] In another embodiment of the invention, the substrate may be treated with a plasma
prior to application of the composition. This embodiment of the invention is particularly
advantageous for substrates of very low surface energy, such as the fluorinated polymers
as exemplified by PTFE and FEP. Suitable conditions for plasma treatment of fluorinated
surfaces are described in copending application of common assignee, serial number
081,200, filed August 3, 1987.
[0031] When a substrate is coated with the composition of the invention, the surface of
the substrate is rendered both antithrombogenic and lubricious, as tested by conventional
methods described in the examples. A 1.6 mm (1/16 inch) thick natural rubber membrane
may be used as a close approximation of human skin for studies simulating the friction
or drag which develops when a catheter, introducer, stylet or guide wire is inserted
or withdrawn through the skin of a patient.
[0032] Antithrombogenicity for the substrates coated with the composition of the invention
may be determined by measuring clotting times by the standard partial (PTT) and activated
partial thromboplastin time (APTT) tests (B.A. Brown,
Hematology Principles and Procedures, Third Edition, Lea and Febiger Co., 1980). These tests are qualitative procedures
for determining the efficacy of TDMAC-heparin, as a raw material or as a coating.
As a measure of the total anti-clotting activity, the APTT can detect the presence
of anticoagulants by giving prolonged clotting times. Non-coated control substrates
generally give clotting times of between 25 to 40 seconds. The heparinized tubings
of the invention give clotting times greater than 1800 seconds.
[0033] The stability of the coatings on the substrates may be determined by performing leach
rate studies using normal saline as leachant, as described in Example V.
[0034] In vivo thrombus formation on catheters coated with the composition of the invention may
be determined by the method of Solomon et al.,
J. of Biomedical Materials Research, 21,43 (1987), as described in Example VI.
[0035] This invention will be further described by the following examples, which are illustrative
only and not to be considered as limitative. In the examples, the percentages of the
complex are given as weight percentages based on the solvent, and the percentages
of silicone are weight percentages based on the weight of the complex.
EXAMPLE I
[0036] To a 1.25% solution of the heparin-TDMAC complex (McGary et al.
supra) in 90:10 Freon™ TF/petroleum ether (v/v), various percentages by weight of 12,500
mm²·s⁻¹ (centistoke) silicone oil were added. The solutions were drawn by application
of a slight vacuum into the lumens of thermoplastic polyurethane (TPU) catheters of
0.04 and 0.8 mm (0.017 and 0.35 in) inside diameter and 23 mm (0.92 in) outside diameter.
The solutions were removed and the lumens were dried at 60°C for 24 hours. Stylet
wires were inserted into the lumens of the catheters and then withdrawn at a constant
rate of 50mm/min. The forces required for withdrawal were measured using the Instron
Universal Testing Instrument. The results of this experiment are tabulated below in
Table I.
TABLE I
| WITHDRAWAL FORCEa FOR STYLET WIRE |
| control |
silicone only |
silicone only 90 day aging |
complex only |
complex and 2% silicone |
complex and 10% silicone |
complex and 30% silicone |
| 4.85 |
0.31 |
0.35 |
5.20 |
11.80 |
0.30 |
0.20 |
| 5.25 |
0.34 |
0.31 |
5.30 |
11.50 |
1.50 |
0.12 |
| 6.30 |
0.36 |
0.39 |
7.00 |
11.00 |
0.75 |
0.15 |
| 8.30 |
0.32 |
0.37 |
7.90 |
7.50 |
1.10 |
0.13 |
| 4.90 |
0.39 |
|
9.10 |
7.50 |
0.90 |
0.32 |
| 6.70 |
0.35 |
|
8.50 |
7.75 |
1.00 |
0.33 |
| |
0.28 |
|
|
|
|
|
| |
0.36 |
|
|
|
|
|
| |
0.13 |
|
|
|
|
|
| |
0.34 |
|
|
|
|
|
| 6.05b |
0.32 |
0.36 |
7.17 |
9.51 |
0.92 |
0.21 |
| a) all values are in newtons |
| b) mean |
[0037] It is seen that a coating of silicone only greatly reduces the withdrawal force (column
2) and that this effect remains substantially unchanged after 90 days (column 3).
Withdrawal forces are somewhat greater when the catheter is coated with the complex
only (column 4), and still greater with 2% silicone (column 5). Columns 6 and 7, however,
show that very effective lubrication is achieved when higher concentrations of silicone
are used, establishing that the complex does not interfere with lubrication by silicone.
EXAMPLE II
[0038] Solutions were prepared containing 12.5 g of the TDMAC-heparin complex and DC 360™
silicone oil of 12,500 mm²·s⁻¹ (centistokes) viscosity in 1 liter of 90:10 Freon™
TF/petroleum ether (v/v). Fifteen cm sections of TPU catheters were coated with the
composition of the invention by briefly dipping into the solution, quickly withdrawing
in less than one second, and drying at 60°C for 24 hours. The catheter sections were
pulled at a constant speed of 50 mm/min through the rubber check valve of a catheter
introducer and the drag forces measured on an Instron Universal Testing Instrument.
The results of this experiment are shown in Table II.

[0039] It is seen from Table II that as little as 2.98% of silicone oil in the composition
reduces the drag force from an average of 513 grams to 341 grams, and that when the
silicone percentage is raised to 75% by weight of the complex, the drag force is reduced
to 120 grams, or 20% of the control. As observed in Example I, the presence of the
complex does not interfere with the lubricating property of the silicone.
EXAMPLE III
[0040] Pieces of TPU catheter tubing 15 cm long were coated with TDMAC-heparin complex and
benzalkonium-heparin complex by the procedure of Example II using the solvents and
silicones indicated in Table III. The coefficients of friction of these tubings were
determined by a Friction Drag Test Accessory to the Instron Universal Testing Instrument.
The results of this experiment are tabulated in Table III.
TABLE III
| TUBING FRICTION |
| Test No. |
Control |
TDMAC-heparin |
Benzalk.-heparin |
TDMAC-heparin; 1,000d |
silicone (2%) 12,500d |
| |
|
a |
b |
c |
|
|
| 1 |
|
1.73 |
|
2.32 |
|
|
| 2 |
|
1.57 |
|
2.42 |
|
|
| 3 |
1.32 |
1.58 |
1.43 |
2.06 |
0.96 |
0.68 |
| 4 |
1.46 |
1.73 |
1.46 |
1.96 |
0.48 |
0.56 |
| 5 |
1.45 |
1.89 |
1.79 |
1.84 |
0.69 |
0.70 |
| 6 |
1.00 |
1.68 |
1.43 |
1.86 |
0.86 |
0.59 |
| 7 |
1.31 |
1.69 |
1.53 |
2.07 |
0.75 |
0.63 |
| a) toluene-petroleum ether |
| b) Freon™ TF-petroleum ether |
| c) isopropanol |
| d) viscosity in mm²·s⁻¹ (centistokes) |
[0041] It is seen from Table III that a coating of heparin complex increases friction over
control value, but that a coating of the compositions having the complex admixed with
silicone reduces friction.
EXAMPLE IV
[0042] Pieces of TPU catheter tubing 15 cm long were coated with the TDMAC-heparin complex
(30 »g/cm²) admixed with silicone of 12,500 mm²·s⁻¹ (centistoke) viscosity by dipping
into Freon™ TF solutions and drying for 24 hours at 60°C. A 78 gram weight was applied
to a natural rubber membrane, and the membrane was dragged across the catheters. Coefficients
of friction were determined with the Instron Universal Testing Instrument.
[0043] Clotting times for these coated catheter sections were determined by the standard
APTT. The results of this experiment are shown in Table IV.
TABLE IV
| % silicone |
coefficient of friction |
APTT (s) |
| 0 |
1.35 |
1800 |
| 2 |
0.63 |
1800 |
| 5 |
0.25 |
1800 |
| 10 |
0.28 |
1800 |
| 20 |
0.16 |
1800 |
| 30 |
0.19 |
1800 |
| 50 |
0.13 |
1800 |
| 100 |
0.077 |
33 |
[0044] Table IV shows that the coefficient of friction decreases with increasing percentage
of silicone, but no decrease is seen in clotting time up to 50% silicone percentage,
showing that the anticoagulant effect of the heparin is not compromised by the silicone.
EXAMPLE V
LEACH RATE STUDY
[0045] Sections of TPU catheters 15 cm long were coated with the TDMAC-heparin complex containing
tritiated heparin, with and without admixed silicone oil, by dipping into 2.0 or 1.25
weight percent solutions of the TDMAC complex in the solvents indicated in Tables
V and VI. The sections were dried for 24 hours at 60°C, and the quantity of heparin
on the catheter surfaces was determined (by liquid scintillation counting and comparison
with a standard curve) and expressed as »g heparin/cm². The coated sections were dynamically
leached in 1 l of normal saline using an incubator shaker at 37°C and 150 rpm for
up to seven days. Saline was changed daily, and samples were removed every 24 hours
and tested for heparin remaining. PTT and APTT times were also determined.
[0046] The results of this experiment are given in Tables V (APTT times) and Table VI (leach
rate study). All PTT times for all catheter sections were greater than 1800 s. APTT
times are tabulated in Table V and heparin remaining is shown in Table VI.

[0047] The results of Example V show that even when the heparin remaining on the catheter
sections has been reduced to as low as 2-3 »g/cm² by a seven day saline leach, the
PTT and APTT times are still more than 1800 seconds.
EXAMPLE VI
[0048] TPU catheters (16 gauge) were coated with the heparin-silicone composition of the
invention and studied by the
in vivo method for evaluation of catheter thrombogenicity of Solomon et al. (supra). Uncoated
TPU catheters and polyvinyl chloride catheters (PVC, 16 gauge) served as controls
in this experiment. Counts were plotted against time and the curve slopes were determined.
TABLE VII
| Catheter Material |
Slope |
| PVC |
0.118 ± 0.077 |
| TPU |
0.077 ± 0.042 |
| heparinized TPU |
0.012 ± 0.010 |
[0049] The significant decreases in the number of counts (deposited platelets) with time
is readily apparent from the lower slope of the curve with the heparinized TPU of
the invention.
[0050] Thus, in accordance with the invention, the surfaces of medical articles adapted
for contact with blood and friction-generating movement across another surface or
a patient's skin may be coated with a composition of anticoagulant, preferably heparin,
and silicone. The heparin provides blood compatibility and the silicone provides lubricity
without in any way compromising the anticoagulant activity of the heparin. Because
the silicone is water insoluble, the composition is resistant to leaching by the blood
and remains on the surface of the device for prolonged periods. This is a particular
advantage for medical procedures, such as long term catheterizations, and provides
both safety and comfort to the patient.
Claims for the following Contracting State(s): AT, BE, CH, DE, FR, GB, GR, IT, LI,
LU, NL, SE
1. A composition being non-leachable for an aqueous vehicle as blood for coating a polymeric
surface comprising a mixture of a quanternary ammonium complex of heparin and 2 to
75% by weight of a lubricating silicone, said complex having the formula

wherein R₁, R₂, R₃ and R₄ are independently selected from the group consisting of
an alkyl group of 1 to 18 carbon atoms and an aralkyl group of 7 to 18 carbon atoms
and H⁻ is a negative ion of heparin, said silicone being water insoluble and noncuring
and having a viscosity of 20 to 1,000,000 mm²·s⁻¹ (centistokes).
2. The composition of Claim 1 wherein said silicone is a polydialkyl siloxane.
3. The composition of Claim 1 wherein R₁, R₂ and R₃ are independently alkyl groups selected
from the group having from 8 to 18 carbon atoms.
4. A medical device for contact with a blood stream comprising an article having a polymeric
surface being coated with a composition being non-leachable for an aqueous vehicle
as blood, and comprising a mixture of a quaternary ammonium complex of heparin and
2 to 75% by weight of a lubricating silicone, said complex having the formula

wherein R₁, R₂, R₃ and R₄ are independently selected from the group consisting of
an alkyl group of 1 to 18 carbon atoms and an aralkyl group of 7 to 18 carbon atoms
and H⁻ is a negative ion of heparin, said silicone being water insoluble and noncuring,
and having a viscosity of 20 to 1,000,000 mm²·s⁻¹ (centistokes).
5. A medical device for contact with a blood stream comprising a shaped article having
a polymeric surface being coated with a composition being non-leachable for an aqueous
vehicle as blood, and comprising a mixture of a quanternary ammonium complex of heparin
and 20 to 50% by weight of a lubricating polydimethylsiloxane, said complex having
the formula

wherein R₁, R₂ and R₃ are independently selected from the group consisting of a straight
chain alkyl group of 8 to 18 carbon atoms, R₄ is selected from the group consisting
of a lower alkyl group of 1 to 4 carbon atoms and H⁻ is a negative ion of heparin,
said polydimethylsiloxane being water insoluble and noncuring, and having a viscosity
of 1,000 to 60,000 mm²·s⁻¹ (centistokes).
6. A method for rendering a polymeric surface of a medical article both antithrombogenic
and lubricious comprising preparing a composition being non-leachable for an aqueous
vehicle as blood by mixing a quanternary ammonium complex of heparin and a lubricating
silicone, said complex having the formula

wherein R₁, R₂, R₃ and R₄ are independently selected from the group consisting of
an alkyl group of 1 to 18 carbon atoms and an aralkyl group of 7 to 18 carbon atoms
and H⁻ is a negative ion of heparin, said silicone being water insoluble and noncuring,
and having a viscosity of 20 to 1,000,000 mm²·s⁻¹ (centistokes), and applying said
composition to said surface of said medical article.
7. The method in accordance with Claim 6 wherein said mixing is performed by dissolving
said complex and silicone in a solvent to provide a solution.
8. The method in accordance with Claim 7 wherein said applying is performed by immersing
said article in said solution, withdrawing said article from said solution and evaporating
said solvent from the surface of said article.
Claims for the following Contracting State(s): ES
1. A process for preparing a composition being non-leachable for an aqueous vehicle as
blood for coating a polymeric surface comprising mixing a quanternary ammonium complex
of heparin and 2 to 75% by weight of a lubricating silicone, said complex having the
formula

wherein R₁, R₂, R₃ and R₄ are independently selected from the group consisting of
an alkyl group of 1 to 18 carbon atoms and an aralkyl group of 7 to 18 carbon atoms
and H⁻ is a negative ion of heparin, said silicone being water insoluble and noncuring,
and having a viscosity of 20 to 1,000,000 mm²·s⁻¹ (centistokes).
2. The process of Claim 1 wherein said silicone is a polydialkyl siloxane.
3. The process of Claim 1 wherein R₁, R₂ and R₃ are independently alkyl groups selected
from the group having from 8 to 18 carbon atoms.
4. The process according to anyone of claims 1-3 wherein said mixing is performed by
dissolving said complex and silicone in a solvent to provide a solution.
5. A medical device for contact with a blood stream comprising an article having a polymeric
surface coated with a composition being non-leachable for an aqueous vehicle as blood,
and comprising a mixture of a quaternary ammonium complex of heparin and 2 to 75%
by weight of a lubricating silicone, said complex having the formula

wherein R₁, R₂, R₃ and R₄ are independently selected from the group consisting of
an alkyl group of 1 to 18 carbon atoms and an aralkyl group of 7 to 18 carbon atoms
and H⁻ is a negative ion of heparin, said silicone being water insoluble and noncuring,
and having a viscosity of 20 to 1,000,000 mm²·s⁻¹ (centistokes).
6. A medical device for contact with a blood stream comprising a shaped article having
a polymeric surface coated with a composition being non-leachable for an aqueous vehicle
as blood, and comprising a mixture of a qanternary ammonium complex of heparin and
20 to 50% by weight of a lubricating polydimethylsiloxane, said complex having the
formula

wherein R₁, R₂ and R₃ are independently selected from the group consisting of a straight
chain alkyl group of 8 to 18 carbon atoms, R₄ is selected from the group consisting
of a lower alkyl group of 1 to 4 carbon atoms and H⁻ is a negative ion of heparin,
said polydimethylsiloxane being water insoluble and noncuring, and having a viscosity
of 1,000 to 60,000 mm²·s⁻¹ (centistokes).
7. A method for rendering a polymeric surface of a medical article both antithrombogenic
and lubricious comprising preparing a composition being non-leachable for an aqueous
vehicle as blood by mixing a quanternary ammonium complex of heparin and a lubricating
silicone, said complex having the formula

wherein R₁, R₂, R₃ and R₄ are independently selected from the group consisting of
an alkyl group of 1 to 18 carbon atoms and an aralkyl group of 7 to 18 carbon atoms
and H⁻ is a negative ion of heparin, said silicone being water insoluble and noncuring,
and having a viscosity of 20 to 1,000,000 mm²·s⁻¹ (centistokes), and applying said
composition to said surface of said medical article.
8. The method in accordance with Claim 7 wherein said mixing is performed by dissolving
said complex and silicone in a solvent to provide a solution.
9. The method in accordance with Claim 7 wherein said applying is performed by immersing
said article in said solution, withdrawing said article from said solution and evaporating
said solvent from the surface of said article.
Patentansprüche für folgende(n) Vertragsstaat(en): AT, BE, CH, DE, FR, GB, GR, IT,
LI, LU, NL, SE
1. Durch einen wäßrigen Träger wie Blut nicht auswaschbare Zusammensetzung zur Beschichtung
einer polymeren Oberfläche, umfassend ein Gemisch aus einem quaternären Ammonium-Komplex
von Heparin und 2 bis 75 Gew.-% eines gleitend machenden Silicons, worin der Komplex
die Formel

hat, worin
R₁, R₂, R₃ und R₄ unabhängig voneinander aus der aus einer Alkyl-Gruppe mit 1 bis
18 Kohlenstoff-Atomen und einer Aralkyl-Gruppe mit 7 bis 18 Kohlenstoff-Atomen bestehenden
Gruppe ausgewählt sind und H⁻ ein negatives Heparin-Ion ist, wobei das Silicon wasserunlöslich
und nichthärtend ist und eine Viskosität von 20 bis 1 000 000 mm²·s⁻¹ (cSt) hat.
2. Zusammensetzung nach Anspruch 1, worin das Silicon ein Polydialkylsiloxan ist.
3. Zusammensetzung nach Anspruch 1, worin R₁, R₂ und R₃ unabhängig voneinander Alkyl-Gruppen
sind, die aus der Gruppe derjenigen mit 8 bis 18 Kohlenstoff-Atomen ausgewählt sind.
4. Medizinische Vorrichtung für den Kontakt mit einem Blut-Strom, umfassend einen Gegenstand
mit einer polymeren Oberfläche, die mit einer durch einen wäßrigen Träger wie Blut
nicht auswaschbaren Zusammensetzung beschichtet ist, die ein Gemisch aus einem quaternären
Ammonium-Komplex von Heparin und 2 bis 75 Gew.-% eines gleitend machenden Silicons
umfaßt, worin der Komplex die Formel

hat, worin
R₁, R₂, R₃ und R₄ unabhängig voneinander aus der aus einer Alkyl-Gruppe mit 1 bis
18 Kohlenstoff-Atomen und einer Aralkyl-Gruppe mit 7 bis 18 Kohlenstoff-Atomen bestehenden
Gruppe ausgewählt sind und H⁻ ein negatives Heparin-Ion ist, wobei das Silicon wasserunlöslich
und nichthärtend ist und eine Viskosität von 20 bis 1 000 000 mm²·s⁻¹ (cSt) hat.
5. Medizinische Vorrichtung für den Kontakt mit einem Blut-Strom, umfassend einen geformten
Gegenstand mit einer polymeren Oberfläche, die mit einer durch einen wäßrigen Träger
wie Blut nicht auswaschbaren Zusammensetzung beschichtet ist, die ein Gemisch aus
einem quaternären Ammonium-Komplex von Heparin und 20 bis 50 Gew.-% eines gleitend
machenden Polydimethylsiloxans umfaßt, worin der Komplex die Formel

hat, worin
R₁, R₂ und R₃ unabhängig voneinander aus der aus einer geradkettigen Alkyl-Gruppe
mit 1 bis 18 Kohlenstoff-Atomen bestehenden Gruppe ausgewählt sind, R₄ aus der aus
einer Niederalkyl-Gruppe mit 1 bis 4 Kohlenstoff-Atomen bestehenden Gruppe ausgewählt
ist und H⁻ ein negatives Heparin-Ion ist, wobei das Polydimethylsiloxan wasserunlöslich
und nichthärtend ist und eine Viskosität von 1 000 bis 60 000 mm²·s⁻¹ (cSt) hat.
6. Verfahren, um eine polymere Oberfläche eines medizinischen Gegenstandes sowohl antithrombogen
als auch gleitfähig zu machen, umfassend
das Herstellen einer durch einen wäßrigen Träger wie Blut nicht auswaschbaren Zusammensetzung
durch Vermischen einer Menge eines quaternären Ammonium-Komplexes von Heparin und
eines gleitend machenden Silicons, worin der Komplex die Formel

hat, worin
R₁, R₂, R₃ und R₄ unabhängig voneinander aus der aus einer Alkyl-Gruppe mit 1 bis
18 Kohlenstoff-Atomen und einer Aralkyl-Gruppe mit 7 bis 18 Kohlenstoff-Atomen bestehenden
Gruppe ausgewählt sind und H⁻ ein negatives Heparin-Ion ist, wobei das Silicon wasserunlöslich
und nichthärtend ist und eine Viskosität von 20 bis 1 000 000 mm²·s⁻¹ (cSt) hat, und
das Aufbringen dieser Zusammensetzung auf die betreffende Oberfläche des medizinischen
Gegenstandes.
7. Verfahren nach Anspruch 6, worin das Vermischen in der Weise durchgeführt wird, daß
der Komplex und das Silicon in einem Lösungsmittel gelöst werden, um eine Lösung bereitzustellen.
8. Verfahren nach Anspruch 7, worin das Aufbringen in der Weise durchgeführt wird, daß
der Gegenstand in die Lösung eingetaucht wird, der Gegenstand der Lösung entnommen
wird und das Lösungsmittel von der Oberfläche des Gegenstandes verdampft wird.
Patentansprüche für folgende(n) Vertragsstaat(en): ES
1. Verfahren zur Herstellung einer durch einen wäßrigen Träger wie Blut nicht auswaschbaren
Zusammensetzung zur Beschichtung einer polymeren Oberfläche, umfassend das Vermischen
eines quaternären Ammonium-Komplexes von Heparin und 2 bis 75 Gew.-% eines gleitend
machenden Silicons, worin der Komplex die Formel

hat, worin
R₁, R₂, R₃ und R₄ unabhängig voneinander aus der aus einer Alkyl-Gruppe mit 1 bis
18 Kohlenstoff-Atomen und einer Aralkyl-Gruppe mit 7 bis 18 Kohlenstoff-Atomen bestehenden
Gruppe ausgewählt sind und H⁻ ein negatives Heparin-Ion ist, wobei das Silicon wasserunlöslich
und nichthärtend ist und eine Viskosität von 20 bis 1 000 000 mm²·s⁻¹ (cSt) hat.
2. Verfahren nach Anspruch 1, worin das Silicon ein Polydialkylsiloxan ist.
3. Verfahren nach Anspruch 1, worin R₁, R₂ und R₃ unabhängig voneinander Alkyl-Gruppen
sind, die aus der Gruppe derjenigen mit 8 bis 18 Kohlenstoff-Atomen ausgewählt sind.
4. Verfahren nach irgendeinem der Ansprüche 1 bis 3, worin das Vermischen in der Weise
durchgeführt wird, daß der Komplex und das Silicon in einem Lösungsmittel gelöst werden,
um eine Lösung bereitzustellen.
5. Medizinische Vorrichtung für den Kontakt mit einem Blut-Strom, umfassend einen Gegenstand
mit einer polymeren Oberfläche, die mit einer durch einen wäßrigen Träger wie Blut
nicht auswaschbaren Zusammensetzung beschichtet ist, die ein Gemisch aus einem quaternären
Ammonium-Komplex von Heparin und 2 bis 75 Gew.-% eines gleitend machenden Silicons
umfaßt, worin der Komplex die Formel

hat, worin
R₁, R₂, R₃ und R₄ unabhängig voneinander aus der aus einer Alkyl-Gruppe mit 1 bis
18 Kohlenstoff-Atomen und einer Aralkyl-Gruppe mit 7 bis 18 Kohlenstoff-Atomen bestehenden
Gruppe ausgewählt sind und H⁻ ein negatives Heparin-Ion ist, wobei das Silicon wasserunlöslich
und nichthärtend ist und eine Viskosität von 20 bis 1 000 000 mm²·s⁻¹ (cSt) hat.
6. Medizinische Vorrichtung für den Kontakt mit einem Blut-Strom, umfassend einen geformten
Gegenstand mit einer polymeren Oberfläche, die mit einer durch einen wäßrigen Träger
wie Blut nicht auswaschbaren Zusammensetzung beschichtet ist, die ein Gemisch aus
einem quaternären Ammonium-Komplex von Heparin und 20 bis 50 Gew.-% eines gleitend
machenden Polydimethylsiloxans umfaßt, worin der Komplex die Formel

hat, worin
R₁, R₂ und R₃ unabhängig voneinander aus der aus einer geradkettigen Alkyl-Gruppe
mit 1 bis 18 Kohlenstoff-Atomen bestehenden Gruppe ausgewählt sind, R₄ aus der aus
einer Niederalkyl-Gruppe mit 1 bis 4 Kohlenstoff-Atomen bestehenden Gruppe ausgewählt
ist und H⁻ ein negatives Heparin-Ion ist, wobei das Polydimethylsiloxan wasserunlöslich
und nichthärtend ist und eine Viskosität von 1 000 bis 60 000 mm²·s⁻¹ (cSt) hat.
7. Verfahren, um eine polymere Oberfläche eines medizinischen Gegenstandes sowohl antithrombogen
als auch gleitfähig zu machen, umfassend
das Herstellen einer durch einen wäßrigen Träger wie Blut nicht auswaschbaren Zusammensetzung
durch Vermischen einer Menge eines quaternären Ammonium-Komplexes von Heparin und
eines gleitend machenden Silicons, worin der Komplex die Formel

hat, worin
R₁, R₂, R₃ und R₄ unabhängig voneinander aus der aus einer Alkyl-Gruppe mit 1 bis
18 Kohlenstoff-Atomen und einer Aralkyl-Gruppe mit 7 bis 18 Kohlenstoff-Atomen bestehenden
Gruppe ausgewählt sind und H⁻ ein negatives Heparin-Ion ist, wobei das Silicon wasserunlöslich
und nichthärtend ist und eine Viskosität von 20 bis 1 000 000 mm²·s⁻¹ (cSt) hat, und
das Aufbringen dieser Zusammensetzung auf die betreffende Oberfläche des medizinischen
Gegenstandes.
8. Verfahren nach Anspruch 7, worin das Vermischen in der Weise durchgeführt wird, daß
der Komplex und das Silicon in einem Lösungsmittel gelöst werden, um eine Lösung bereitzustellen.
9. Verfahren nach Anspruch 8, worin das Aufbringen in der Weise durchgeführt wird, daß
der Gegenstand in die Lösung eingetaucht wird, der Gegenstand der Lösung entnommen
wird und das Lösungsmittel von der Oberfläche des Gegenstandes verdampft wird.
Revendications pour l'(les) Etat(s) contractant(s) suivant(s): AT, BE, CH, DE, FR,
GB, GR, IT, LI, LU, NL, SE
1. Composition qui n'est pas lessivable par un véhicule aqueux tel que le sang pour revêtir
une surface polymère comprenant un mélange d'un complexe ammonium quaternaire d'héparine
et 2 à 75% en poids d'une silicone lubrifiante, ledit complexe ayant la formule

dans laquelle R₁, R₂, R₃ et R₄ sont choisis indépendamment dans le groupe formé par
un groupe alkyle ayant 1 à 18 atomes de carbone et un groupe arylalkyle ayant 7 à
18 atomes de carbone et H⁻ est un ion négatif d'héparine,ladite silicone étant insoluble
dans l'eau et non durcissable, et ayant une viscosité de 20 à 1 000 000 mm².s⁻¹ (centistokes).
2. Composition selon la revendication 1, dans laquelle ladite silicone est un polydialkylsiloxane.
3. Composition selon la revendication 1, dans laquelle R₁, R₂ et R₃ sont indépendamment
des groupes alkyle choisis dans le groupe ayant de 8 à 18 atomes de carbone.
4. Appareil médical destiné à un contact avec un courant sanguin comprenant un article
ayant une surface polymère revêtue avec une composition qui n'est pas lessivable par
un véhicule aqueux tel que le sang et comprenant un mélange d'un complexe ammonium
quaternaire d'héparine et 2 à 75% en poids d'une silicone lubrifiante, ledit complexe
ayant la formule

dans laquelle R₁, R₂, R₃ et R₄ sont choisis indépendamment dans le groupe formé par
un groupe alkyle ayant 1 à 18 atomes de carbone et par un groupe aralkyle ayant de
7 à 18 atomes de carbone et H⁻ est un ion négatif d'héparine, ledit silicone étant
insoluble dans l'eau et non durcissable, et ayant une viscosité de 20 à 1 000 000
mm².s⁻¹ (centistokes).
5. Appareil médical destiné à un contact avec un courant sanguin comprenant un article
conformé ayant une surface polymère revêtue avec une composition qui n'est pas lessivable
par un véhicule aqueux tel que le sang comprenant un mélange d'un complexe ammonium
quaternaire d'héparine et 20 à 50% en poids d'un polydiméthylsiloxane lubrifiant,
ledit complexe ayant la formule

dans laquelle R₁, R₂ et R₃ sont choisis indépendamment dans le groupe formé par un
groupe alkyle à chaîne linéaire ayant 8 à 18 atomes de carhone, R₄ est choisi dans
le groupe formé par un groupe alkyle inférieur de 1 à 4 atomes de carbone et H⁻ est
un ion négatif d'héparine, ledit polyméthylsiloxane étant insoluble dans l'eau et
non durcissable, et ayant une viscosité de 1000 à 60 000 mm².s⁻¹ (centistokes).
6. Procédé pour rendre une surface polymère d'un article médical à la fois antithrombogène
et lubrifiante consistant à préparer une composition qui n'est pas lessivable par
un véhicule aqueux tel que le sang, en mélangeant un complexe ammonium quaternaire
d'héparine et une silicone lubrifiante,ledit complexe ayant la formule

dans laquelle R₁, R₂, R₃ et R₄ sont choisis indépendamment dans le groupe formé par
un groupe alkyle ayant 1 à 18 atomes de carbone et un groupe arylalkyle ayant 7 à
18 atomes de carbone et H⁻ est un ion négatif d'héparine,ladite silicone étant insoluble
dans l'eau et non durcissable, et ayant une viscosité de 20 à 1 000 000 mm².s⁻¹ (centistokes),
et à appliquer ladite composition à ladite surface dudit article médical.
7. Procédé selon la revendication 6, dans lequel on effectue le mélange en dissolvant
lesdits complexe et silicone dans un solvant pour obtenir une solution.
8. Procédé selon la revendication 6, dans lequel on réalise l'application en immergeant
ledit article dans ladite solution, en retirant ledit article de ladite solution et
en évaporant ledit solvant de la surface dudit article.
Revendications pour l'(les) Etat(s) contractant(s) suivant(s): ES
1. Procédé de préparation d'une composition qui n'est pas lessivable par un véhicule
aqueux tel que le sang pour revêtir une surface polymère consistant à mélanger un
complexe ammonium quaternaire d'héparine et 2 à 75% en poids d'une silicone lubrifiante,
ledit complexe ayant la formule

dans laquelle R₁, R₂, R₃ et R₄ sont choisis indépendamment dans le groupe formé par
un groupe alkyle ayant 1 à 18 atomes de carbone et un groupe arylalkyle ayant 7 à
18 atomes de carbone et H⁻ est un ion négatif d'héparine, laditesilicone étant insoluble
dans l'eau et non durcissable, et ayant une viscosité de 20 à 1 000 000 mm².s⁻¹ (centistokes).
2. Procédé selon la revendication 1, dans lequel ladite silicone est un polydialkylsiloxane.
3. Procédé selon la revendication 1, dans lequel R₁, R₂ et R₃ sont indépendamment des
groupes alkyle choisis dans le groupe ayant de 8 à 18 atomes de carbone.
4. Procédé selon l'une quelconque des revendications 1 à 3, dans lequel on réalise ledit
mélange en dissolvant lesdits complexe et silicone dans un solvant pour obtenir une
solution.
5. Appareil médical destiné à un contact avec un courant sanguin comprenant un article
ayant une surface polymère revêtue avec une composition qui n'est pas lessivable par
un véhicule aqueux tel que le sang et comprenant un mélange d'un complexe ammonium
quaternaire d'héparine et 2 à 75% en poids d'une silicone lubrifiante, ledit complexe
ayant la formule

dans laquelle R₁, R₂, R₃ et R₄ sont choisis indépendamment dans le groupe formé par
un groupe alkyle ayant 1 à 18 atomes de carbone et par un groupe arylalkyle ayant
7 à 18 atomes de carbone et H⁻ est un ion négatif d'héparine, ledit silicone étant
insoluble dans l'eau et non durcissable, et ayant une viscosité de 20 à 1 000 000
mm².s⁻¹ (centistokes).
6. Appareil médical destiné à un contact avec un courant sanguin comprenant un article
conformé ayant une surface polymère revêtue avec une composition qui n'est pas lessivable
par un véhicule aqueux tel que le sang, et comprenant un mélange d'un complexe ammonium
quaternaire d'héparine et 20 à 50% en poids d'un polydiméthylsiloxane lubrifiant,
ledit complexe ayant la formule

dans laquelle R₁, R₂ et R₃ sont choisis indépendamment dans le groupe formé par un
groupe alkyle à chaîne linéaire ayant 8 à 18 atomes de carbone, R₄ est choisi dans
le groupe formé par un groupe alkyle inférieur de 1 à 4 atomes de carbone et H⁻ est
un ion négatif d'héparine, ledit polyméthylsiloxane étant insoluble dans l'eau et
non durcissable, et ayant une viscosité de 1000 à 60 000 mm².s⁻¹ (centistokes).
7. Procédé pour rendre une surface polymère d'un article médical à la fois antithrombogène
et lubrifiante consistant à préparer une composition qui n'est pas lessivable par
un véhicule aqueux tel que le sang, en mélangeant un complexe ammonium quaternaire
d'héparine et une silicone lubrifiante, ledit complexe ayant la formule

dans laquelle R₁, R₂, R₃ et R₄ sont choisis indépendamment dans le groupe formé par
un groupe alkyle ayant 1 à 18 atomes de carbone et un groupe arylalkyle ayant 7 à
18 atomes de carbone et H⁻ est un ion négatif d'héparine,ladite silicone étant insoluble
dans l'eau et non durcissable, et ayant une viscosité de 20 à 1 000 000 mm².s⁻¹ (centistokes),
et à appliquer ladite composition à ladite surface dudit article médical.
8. Procédé selon la revendication 7, dans lequel on effectue le mélange en dissolvant
lesdits complexe et silicone dans un solvant pour obtenir une solution.
9. Procédé selon la revendication 7, dans lequel on réalise l'application en immergeant
ledit article dans ladite solution, en retirant ledit article de ladite solution et
en évaporant ledit solvant de la surface dudit article.